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Multi-sensor location estimation for illegal cell-phone use in real-life indoor environment

机译:现实室内环境中非法使用手机的多传感器位置估计

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This paper proposes a novel method for location estimation of a cell-phone in an indoor environment with experimental validation. The proposed method is a location fingerprint scheme which employs the statistical characteristics of the signal cross-correlation among multiple sensors. As the cross-correlation between a pair of antennas fully stores the information of their complex channel responses, the proposed method can be considered as a generalized scheme of all conventional location fingerprint ones i.e. Received Signal Strength Indicator (RSSI), Time Difference of Arrival (TDOA), and Direction of Arrival (DOA). Besides, different from the conventional methods, in which the locality of spatial correlation is utilized, thus fine grid location measurements is required and environment must be static, the proposed one invokes statistical learning technique and estimates location based on the correlation of received samples with the statistical learning database. Therefore, the proposed method is superior to conventional ones in terms of location estimation accuracy and installation simplicity. An experiment conducted in class room validates the superiority of the proposed method.
机译:本文提出了一种通过实验验证的室内环境下手机位置估计的新方法。所提出的方法是一种位置指纹方案,该方案利用了多个传感器之间信号互相关的统计特性。由于一对天线之间的互相关完全存储了其复杂信道响应的信息,因此该方法可被视为所有常规定位指纹的通用方案,即接收信号强度指示器(RSSI),到达时间差( TDOA)和到达方向(DOA)。此外,与传统方法不同,该方法利用空间相关性的局部性,因此需要精细的网格位置测量并且环境必须是静态的,所提出的方法调用统计学习技术并基于接收到的样本与对象之间的相关性来估计位置。统计学习数据库。因此,所提出的方法在位置估计精度和安装简便性方面优于传统方法。在教室里进行的实验验证了该方法的优越性。

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